Research on the Similarity Scale of Flood Discharge Atomization Based on Water-Air Two-Phase Flow

Author:

Liu Gang12,Tong Fuguo12,Tian Bin12,Lan Jiaxin1

Affiliation:

1. Hubei Key Laboratory of Disaster Prevention and Mitigation, China Three Gorges University, Yichang 443002, China

2. College of Hydraulic & Environment Engineering, China Three Gorges University, Yichang 443002, China

Abstract

The flood discharge atomization of high dams involves a complex coupled flow of water and air. Small-scale model tests are typically used to predict the atomization of flood discharge. However, the accuracy of the prediction results often suffers because of the scale effect between the model and the prototype. Considering that the numerical simulation method has the advantage of not being restricted by similarity scales, this paper studies the influence of the scale effect on the atomization of flood discharge based on the principle of water-air two-phase flow. Taking the Shuibuya Hydropower Station as the research object, the distribution of the flood discharge atomized rainfall and the atomized wind speed are studied when the boundary conditions, ambient atmospheric pressure, and geometric dimensions meet similar requirements. The research results show that under the same boundary conditions, the geometric scale is the most important factor affecting flood discharge atomization. The smaller the geometric scale, the smaller the atomization wind speed and rainfall intensity obtained by the model, which means that smaller monitoring errors lead to larger prediction deviations. When the calculation model satisfies similar atmospheric pressure conditions, the atomization wind speed and rainfall obtained by the models with different geometric scales satisfy the standard exponential function relationship. By comparing with the atomized rainfall and wind speed data observed by the Shuibuya prototype, it is found that the prediction accuracy of the prototype can be greatly improved when the model satisfies a similar atmospheric pressure.

Funder

Hubei Key Laboratory of Construction and Management in Hydropower Engineering

National Natural Science Foundation of China

Publisher

MDPI AG

Subject

Water Science and Technology,Aquatic Science,Geography, Planning and Development,Biochemistry

Reference31 articles.

1. Research progress and frontiers on flood discharge atomization of Chinese high dam projects;Lian;J. Hydraul. Eng.,2019

2. Advances in Research on Flood Discharge Atomization;Wang;J. Yangtze River Sci. Res. Inst.,2013

3. Prototype observation of discharge atomization at Baozhusi Hydropower Station;Yang;Water Resour. Hydropower Eng.,2007

4. Atomization measurement for Wantang Hydroplant;Wu;Hydro-Sci. Eng.,2001

5. Prototype observation and model test study on flood discharging atomization;Liu;Water Resour. Hydropower Northeast China,2002

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